Shilpa Mishra | Renewable Energy and Green Technologies | Innovative Research Award

Innovative Research Award

Shilpa Mishra
M.B.M. University, India

Shilpa Mishra
Affiliation M.B.M. University
Country India
Scopus ID 57189322764
Documents 8
Citations 108
h-index 5
Subject Area Renewable Energy and Green Technologies
Event New Scientists Awards
ORCID 0000-0001-7155-2003

Shilpa Mishra is an Indian researcher specializing in renewable energy systems, economic emission dispatch, and intelligent optimization techniques for sustainable power networks. Her academic work integrates computational intelligence with electrical engineering applications to address the operational challenges associated with renewable energy integration, uncertainty modelling, and energy storage technologies. Her publication record and citation metrics indicate growing scholarly recognition within the fields of power systems optimization and green technologies.[1]

Abstract

This article summarizes the academic profile and research accomplishments of Shilpa Mishra, highlighting contributions to renewable energy optimization, intelligent dispatch strategies, and energy-efficient transportation systems. Her work emphasizes metaheuristic algorithms for addressing uncertainty in renewable-integrated power systems and supports the broader transition toward sustainable energy infrastructures.[2]

Keywords

Renewable energy, economic emission dispatch, metaheuristic optimization, microgrids, electric vehicles, uncertainty modelling, power systems, green technologies.

Introduction

Mishra completed doctoral research in Electrical Engineering at the Indian Institute of Technology Jodhpur and has served in academic roles related to electrical engineering education and research. Her studies investigate computational methods capable of improving economic efficiency while reducing emissions in modern power systems.[3]

Research Profile

Her scholarly portfolio includes journal articles and conference papers focused on optimization under uncertainty, renewable integration, and energy storage technologies. Citation metrics demonstrate measurable influence across interdisciplinary domains involving electrical engineering and sustainable energy systems.[1]

Research Contributions

  • Development of swarm-based and stochastic optimization methods for economic emission load dispatch.
  • Investigation of uncertainty-aware dispatch strategies for wind, solar, and diesel microgrids.
  • Research on electric vehicle architectures integrating photovoltaic systems, batteries, supercapacitors, and BLDC motors.

Publications

  • “Swarm Intelligent Search and Rescue Method for Economic Emission Load Dispatch of Renewable Integrated Power System Considering Uncertainty” (2025).
  • “Solving Bi-objective Economic-Emission Load Dispatch of Diesel-Wind-Solar Microgrid Using African Vulture Optimization Algorithm” (2024).
  • “Stochastic Search and Rescue Method for Day Ahead Economic Emission Load Dispatch Under Wind Uncertainty” (2024).

Research Impact

The practical relevance of Mishra’s research lies in its potential to improve grid reliability, lower operational emissions, and support renewable penetration in developing energy markets. Her work contributes to the advancement of intelligent decision-making frameworks required for future smart grids and low-carbon transportation systems.[4]

Award Suitability

Based on publication output, citation performance, and demonstrated contributions to renewable energy optimization, Mishra aligns with the objectives of the New Scientists Awards. Her interdisciplinary approach and emphasis on sustainable technologies reflect emerging priorities in energy research and innovation.[5]

Conclusion

Shilpa Mishra’s academic profile demonstrates continued engagement with challenges associated with renewable energy integration and optimization. Her research trajectory indicates meaningful contributions to sustainable power systems and supports recognition through early-career scientific award programs.[6]

References

  1. Elsevier. (n.d.). Scopus author details: Shilpa Mishra, Author ID 57189322764. Scopus.
    https://www.scopus.com/authid/detail.uri?authorId=57189322764
  2. Mishra, S. (2025). Swarm Intelligent Search and Rescue Method for Economic Emission Load Dispatch of Renewable Integrated Power System Considering Uncertainty. Swarm and Evolutionary Computation.
    https://doi.org/10.1016/j.swevo.2025.101928
  3. ORCID. (n.d.). Shilpa Mishra researcher profile.
    https://orcid.org/0000-0001-7155-2003
  4. Mishra, S. (2024). Stochastic Search and Rescue Method for Day Ahead Economic Emission Load Dispatch Under Wind Uncertainty. IEEE Access.
    https://doi.org/10.1109/ACCESS.2024.3418966
  5. Mishra, S. (2024). Solving Bi-objective Economic-Emission Load Dispatch of Diesel-Wind-Solar Microgrid Using African Vulture Optimization Algorithm. Heliyon.
    https://doi.org/10.1016/j.heliyon.2024.e24993
  6. New Scientists Awards. (n.d.). Award program information and eligibility criteria.
    newscientists.net

Mohammad Sadegh Shakeri | Green Technologies | Green Technology Award

Dr. Mohammad Sadegh Shakeri | Green Technologies | Green Technology Award

Associated Professor at Department of Magnetic Materials and Nanostructures, NZ34, Division of Condensed Matter Physics, NO3, Institute of Nuclear Physics Polish Academy of Sciences, Krakow, Poland, 2023-now, Poland.

Dr. Mohammad Sadegh Shakeri is an Assistant Professor at the Institute of Nuclear Physics, Polish Academy of Sciences, specializing in magnetic materials, nanostructures, and condensed matter physics. His work spans materials synthesis, computational modeling, and experimental characterization, contributing to advanced ceramics, biomaterials, and photocatalysts. A recipient of multiple international awards and research grants, he actively collaborates with leading global institutions.

Publication Profile

Scopus

Orcid

Google Scholar

Educational Details

Dr. Mohammad Sadegh Shakeri holds a Ph.D. in Materials Science and Engineering from the Materials & Energy Research Centre in Iran (2012–2017). He earned his M.Sc. from the University of Tabriz (2009–2012) and a B.Sc. from Sahand University of Technology (2004–2009), both in Materials Science and Engineering. His early academic foundation was built at Emam Khomeini High School and Rasoul-e-Akram Pre-University in Songhor, Kermanshah, Iran.

Professional Experience

Dr. Shakeri is an Assistant Professor at the Department of Magnetic Materials and Nanostructures, Institute of Nuclear Physics, Polish Academy of Sciences, Krakow, Poland. He has previously served as a postdoctoral researcher at the same institution (2021–2023) and held visiting researcher positions at the University of Duisburg-Essen, Germany (2023), and the University of Jean Monnet, France (2022). His industry experience includes working as a Research & Development Specialist at Fartak Sanat Rayan Mihan Co. (2017–2020). Additionally, he has contributed to academia as a lecturer at Faradars Virtual University, Tehran, Iran (2020–2021) and has served as a reviewer for reputable scientific journals, including Journal of Alloys and Compounds and Scientific Reports (Nature).

Research Interest

Dr. Shakeri’s research focuses on magnetic materials, nanostructures, and condensed matter physics, with expertise in ultra-high temperature ceramics (UHTCs), photocatalyst materials, biomaterials, and laser-matter interactions. His work integrates density functional theory (DFT), molecular dynamics (MD) simulations, and experimental materials characterization to develop advanced materials for energy, biomedical, and industrial applications.

Author Metrics & Contributions

Dr. Shakeri has authored numerous peer-reviewed publications and has been awarded multiple prestigious research grants, including funding from the Polish National Science Center (NCN), the European Funds for Regional Development, and the Central European Research Infrastructure Consortium (CERIC-ERIC). He is an active member of the European Ceramics Society, CECAM, and FIT4NANO. His scientific contributions have been widely recognized, earning him accolades such as the Polish Ministry of Science and Education Scholarship for Outstanding Young Scientists (2023) and the PSRS Award from the Polish Synchrotron Radiation Society (2024).

Top Noted Publication

  1. Optical Band Gap and Spectroscopic Study of Lithium Alumino Silicate Glass Containing Y³⁺ Ions

    • Journal: Spectrochimica Acta Part A: Molecular and Biomolecular Spectroscopy

    • Citations: 96 (2011)

    • Summary: This study investigates the optical band gap and spectroscopic properties of lithium alumino silicate glass doped with Y³⁺ ions, revealing its potential applications in optoelectronics and photonic devices.

  2. Electrochemical and Cellular Behavior of Ultrafine-Grained Titanium In Vitro

    • Journal: Materials Science and Engineering: C

    • Citations: 88 (2014)

    • Summary: Examines the electrochemical and biocompatibility properties of ultrafine-grained titanium, highlighting its suitability for biomedical implants.

  3. Nano-Structured Yttria-Stabilized Zirconia Coating by Electrophoretic Deposition

    • Journal: Applied Surface Science

    • Citations: 50 (2013)

    • Summary: Demonstrates an advanced method for depositing yttria-stabilized zirconia coatings, improving the material’s thermal and mechanical stability.

  4. Effect of Hydroxyapatite Coating on Corrosion Behavior and Nickel Release of NiTi Shape Memory Alloy

    • Journal: Materials and Corrosion

    • Citations: 42 (2014)

    • Summary: Investigates how hydroxyapatite coatings enhance the corrosion resistance and biocompatibility of NiTi shape memory alloys, making them more suitable for medical applications.

  5. Effect of Surface Modification by Nitrogen Ion Implantation on Electrochemical and Cellular Behavior of Super-Elastic NiTi Shape Memory Alloy

    • Journal: Journal of Materials Science: Materials in Medicine

    • Citations: 37 (2014)

    • Summary: Highlights the impact of nitrogen ion implantation on the electrochemical and biological performance of NiTi alloys.

  6. The Influence of Ni₄Ti₃ Precipitates Orientation on Two-Way Shape Memory Effect in a Ni-Rich NiTi Alloy

    • Journal: Journal of Alloys and Compounds

    • Citations: 37 (2009)

    • Summary: Explores how the orientation of Ni₄Ti₃ precipitates affects the shape memory behavior of NiTi alloys.

  7. Optical Properties of Transparent Glass–Ceramics Containing Lithium–Mica Nanocrystals: Crystallization Effect

    • Journal: Materials Research Bulletin

    • Citations: 35 (2013)

    • Summary: Studies the crystallization behavior and optical properties of lithium–mica-based glass-ceramics for photonic applications.

  8. High Microwave Absorption of Nano-Fe₃O₄ Deposited Electrophoretically on Carbon Fiber

    • Journal: Materials and Manufacturing Processes

    • Citations: 33 (2016)

    • Summary: Investigates Fe₃O₄-coated carbon fibers for high-performance microwave absorption applications.

  9. Influence of Fe₃O₄ Nanoparticles in Hydroxyapatite Scaffolds on Primary Human Fibroblast Cell Proliferation

    • Journal: Journal of Materials Engineering and Performance

    • Citations: 33 (2016)

    • Summary: Evaluates the biocompatibility of Fe₃O₄-enhanced hydroxyapatite scaffolds for biomedical applications.

  10. Characterization and Optical Properties of Mechanochemically Synthesized Molybdenum-Doped Rutile Nanoparticles and Their Electronic Structure Studies by Density Functional Theory

  • Journal: Materials Today Chemistry

  • Citations: – (Recent)

  • Summary: Integrates experimental and computational methods to analyze molybdenum-doped rutile nanoparticles for optoelectronic applications.

Conclusion

Dr. Mohammad Sadegh Shakeri is a strong candidate for the Research for Green Technology Award due to his pioneering work in advanced materials, photocatalysis, and sustainable energy applications. His research aligns with green technology advancements, making significant contributions to eco-friendly materials and clean energy solutions. Strengthening his focus on real-world green technology applications and industry collaborations will further solidify his position as a leading researcher in this field.